GB2445855A - Coke oven heating wall replacement using large size cast modules - Google Patents

Coke oven heating wall replacement using large size cast modules Download PDF

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Publication number
GB2445855A
GB2445855A GB0800676A GB0800676A GB2445855A GB 2445855 A GB2445855 A GB 2445855A GB 0800676 A GB0800676 A GB 0800676A GB 0800676 A GB0800676 A GB 0800676A GB 2445855 A GB2445855 A GB 2445855A
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United Kingdom
Prior art keywords
large size
modules
course
size cast
blocks
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Granted
Application number
GB0800676A
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GB2445855B (en
GB0800676D0 (en
Inventor
James D Crane
Robert A Bloom
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VANOCUR REFRACTORIES LLC
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VANOCUR REFRACTORIES LLC
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Classifications

    • CCHEMISTRY; METALLURGY
    • C10PETROLEUM, GAS OR COKE INDUSTRIES; TECHNICAL GASES CONTAINING CARBON MONOXIDE; FUELS; LUBRICANTS; PEAT
    • C10BDESTRUCTIVE DISTILLATION OF CARBONACEOUS MATERIALS FOR PRODUCTION OF GAS, COKE, TAR, OR SIMILAR MATERIALS
    • C10B29/00Other details of coke ovens
    • C10B29/02Brickwork, e.g. casings, linings, walls
    • CCHEMISTRY; METALLURGY
    • C10PETROLEUM, GAS OR COKE INDUSTRIES; TECHNICAL GASES CONTAINING CARBON MONOXIDE; FUELS; LUBRICANTS; PEAT
    • C10BDESTRUCTIVE DISTILLATION OF CARBONACEOUS MATERIALS FOR PRODUCTION OF GAS, COKE, TAR, OR SIMILAR MATERIALS
    • C10B29/00Other details of coke ovens
    • C10B29/06Preventing or repairing leakages of the brickwork
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F27FURNACES; KILNS; OVENS; RETORTS
    • F27DDETAILS OR ACCESSORIES OF FURNACES, KILNS, OVENS, OR RETORTS, IN SO FAR AS THEY ARE OF KINDS OCCURRING IN MORE THAN ONE KIND OF FURNACE
    • F27D1/00Casings; Linings; Walls; Roofs
    • F27D1/04Casings; Linings; Walls; Roofs characterised by the form, e.g. shape of the bricks or blocks used
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F27FURNACES; KILNS; OVENS; RETORTS
    • F27DDETAILS OR ACCESSORIES OF FURNACES, KILNS, OVENS, OR RETORTS, IN SO FAR AS THEY ARE OF KINDS OCCURRING IN MORE THAN ONE KIND OF FURNACE
    • F27D1/00Casings; Linings; Walls; Roofs
    • F27D1/16Making or repairing linings increasing the durability of linings or breaking away linings
    • F27D1/1621Making linings by using shaped elements, e.g. bricks
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10TTECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
    • Y10T29/00Metal working
    • Y10T29/49Method of mechanical manufacture
    • Y10T29/4935Heat exchanger or boiler making
    • Y10T29/49352Repairing, converting, servicing or salvaging
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10TTECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
    • Y10T29/00Metal working
    • Y10T29/49Method of mechanical manufacture
    • Y10T29/49718Repairing
    • Y10T29/49732Repairing by attaching repair preform, e.g., remaking, restoring, or patching
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10TTECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
    • Y10T29/00Metal working
    • Y10T29/49Method of mechanical manufacture
    • Y10T29/49718Repairing
    • Y10T29/49732Repairing by attaching repair preform, e.g., remaking, restoring, or patching
    • Y10T29/49734Repairing by attaching repair preform, e.g., remaking, restoring, or patching and removing damaged material

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  • Chemical & Material Sciences (AREA)
  • Engineering & Computer Science (AREA)
  • Materials Engineering (AREA)
  • Oil, Petroleum & Natural Gas (AREA)
  • Organic Chemistry (AREA)
  • Mechanical Engineering (AREA)
  • General Engineering & Computer Science (AREA)
  • Furnace Housings, Linings, Walls, And Ceilings (AREA)
  • Coke Industry (AREA)

Abstract

A method of fully replacing a heating wall 22 and/or ceiling of a coke oven battery 10 using large size cast modules 44 of refractory material, having high dimensional stability, thermal shock resistance in the range -17{C to 1566{C, abrasion resistance, a height of two silica bricks and incorporating at least one aperture which will define a portion of a flue (30, figure 8d), standpipe, smoke hole or charging hole in the wall or ceiling. The method comprises laying a first course of large size modules 44, setting the proper measurements between the first course and existing walls, leveling and aligning the course, possibly using floor wings (39, figure 7a) if floor is not level, mortaring the course in place, laying further courses to construct the wall, laying a first course of ceiling modules (52, figure 12) designed to rest on top of the heating walls (62, figure 9), mortaring the course in place, laying subsequent courses on top and finally pouring a top cover layer over the blocks. Prior to construction the doors 20, doorframes 21 and buckstays 28 may be removed, existing walls may be demolished using heavy machinery, ports in the floor may be vacuumed and covered and adjacent heating walls may be insulated 31. The blocks 44 in the wall may be offset by laying a smaller block 45 at alternate ends of subsequent courses. The flues may be alternately used for burning and drafting. Clean out ports may be cut out of the modules (47, figure 6c) and mortared back into place once construction is completed. The oven may only need heating for 24 to 48 hours prior to being put back into use.

Description

* 2445855 1.
COKE OVEN RECONSTRUCTION
The present invention relates to a coke oven reconstruction, and more particularly to a new, faster and more efficient way to reconstruct heating walls and ceilings in coke oven batteries from the pusher side to the coke side, wherein large 5ize cast monolithic modukc having high dimensional stability, negligible expansion on heating, good abrasion resistance, good compressive strength and good thermal shock resistance in the range of -20' to 1565 Celsius are employed.
Many coke oven batteries in the United States and around the world are in excess of fifty years old, which batteries were made L a large extent of silica bricks.
As they age the silica brick heating walls begin to degrade, and they need repairs ranging from patching and spraying of material to prevent further cracking and to slow down the degradation that is taking place to replacing an end portion of a heating wall. Eventually the heating walls will need to be replaced. Historically, replacing entire heating walls involves constructing a new hearing wall of silica bricks, a process that may involve laying in excess of 4000 silica bricks and may take up to two months or longer to complete. There can be over a hundred different shapes of silica bricks, and there are often problems with suppliers of the silica bricks that result in a relatively high percentage of broken bricks, further slowing down the process. Bricks made from a refractory repair mix are somewhat bectcr, in that a smaller percentage of the bricks arrive broken, but there are still thousands of bricks to he laid in hundreds of different shapes, resulting in a long down time and a high expense. Large size, thermally stable blocks c,r modules of a non-expanding material have been developed, but these had only been used for endwall repairs, meaning that when heating wall replacements had to he done, they were done with smaller bricks.
It is an Object of this invernion to reconstruct heating walls and ceilings from the pusher side to the coke side of a coke oven battety made of silica bricks in a cost effective manner, wherein the reconstructed walls and ceilings will outperfurm the walls and ceiling which they have replaced.
More particularly, it i5 an object of this invention (C) use the large size cast modules in a heating wall replacement and to use large size cast blocks in a ceiling replacement, which modules and blocks are made of material which will provide monolithic modules having high dimensional stability, negligible expansion on heating, good abrasion resistance, good compressive strength and good thermal shock resistance in the range of 200 to 1565 . By using the large Size modules and blocks of a thermally stable material the repair time is approximately halved, and costs are cut substantially also. In addition, the new heating walls will outperform the walls which they replaced.
The above objects and other objects and advantages of this invention will become apparent after a consideration of the following detailed description taken in conjunction with the accompanying Figures.
PIG. I is a somewhat schematic perspective overall view of a coke oven battery, parts having been removed and simplified for purposes of clarity.
FIG. 2 shows a perspective view of the front portion of a coke oven battery with three adjacent doors removed.
FIG. 3 is a perspective view of a portion of' a coke oven battery showing the front portion of the coke oven shown in FIG. 2 after the buckstays adjacent the portion to be reconstructed have been cut-off and removed, and after the associated tie rods have been removed, and further showing the use of heavy equipment to demolish two adjacent heating walls in a coke oven.
FIG. 4 is a perspective view of the coke oven battery showing the air and gas ports on the right being vacuumed with heavy-duty industrial vacuuming equipment, and the from air and gas ports on the left being covered, the floor and walls being covered with insulation material.
FIG. 5a is an enlarged portion of FIG. 4 showing the front air and gas posts on the left covered.
FIGS. 5h-5d are perspective, side, and sectional views, respectively, of air and gas pon modules.
FIG. 6a shot the tp view or a rcpair module which is used with this invention.
FIG. 6b shows an end view of a repair module, showing the tongue-and-groove configuration.
FIG. 6c Shows the module of FIG. 6a after clean OUt ports have been cut-out, and the cut-out. or plugs which will be subsequently mortared back in place.
FIG. 7 is a perspective view showing the first row of modules being leveled.
FIG. 7a shows an alternative first course used with floors which are not near level.
FIG. 8a is a perspective view showing the first two rows of modules and the cIeanout ports in the first row of modules, and with the secondary air stacks installed.
FIG. Sb is enlarged perspective view of a portion of FIG. 8a.
FIG. 8c is a perspective view showing tW coke oven heating walls rebuilt with the first two course of modules, this view also showing vertical story poles which have been erected to assist in the aligning and leveling of the modules.
FIGS. 8d and 8e are views ol the entire length of a heating wall during reconsfniction, FIG. 8d showing an odd course of modules installed on the top of the heating wall under reconstruction, and FIG. 8e showing an even course of modules installed on the top of a heating wall under reconstnjction.
FIG. 9 is a schematic view similar to FIG. 8c. but showing the heating walls rebuilt to ceiling height, and prior to the installation of ceiling blocks, the story poles having been removed, and only a few course of large size cast modules being illustrated for simplicity purposes.
FIG. 10 shows a perspective "jew of a partial coke oven battery with two completed heating walls of modules, and with ceiling blocks in place.
FIG. II is a perspective view of a portion of a coke oven battery in which two heating walls and the ceiling have been reconstnjcted with ltre size modules and blocks, with the top of the ceiling beint l)OU red with high temperature castable material.
FIG. 12 is a sectional view taken generally along the line 1212 in FIG. IJ, showing a coking chamber which has been reconstructed in accordance with the principles of this invention.
FIGS. 13a-13c bottom views of various ceiling blocks, FIG. 13a illustrating blocks used for tbrrning a smoke hole. FIG. 13h illustrating hlock used for forming charge holes, and FIG 13c illustrating blocks used for forming a gas take off.
FIG. 14 is a sectional view taken generally along the line 14-14 in FIG. 11, showing a heating wall and the ceiling above it which have been i rconstructed in accordance with the principles of this.mvention.
FIGS. ISa-15d show bottom views of ceiling modules used in the ceiling reconstruction shown in FIG. 14.
FIG. 15e shows a sliding block which is used with the sliding ceiling module shown in FIG. 15d.
FIG. I shows an overall view of a portion of a conventional coke oven battery. The battery is indicated generally at tO. Volatiles driven off during the coking process flow from standpipes 12 to a collector 14 for further processing. The coke oven battery includes a plurality of coking chambers 16 (FIG. 2), each chamber extending the length of the battery from the pusher side 18 to the coke side 19 (FIG.
12). Each coking chamber is slightly tapered and is provided with fully removable doors on the two opposing ends, with the taper widening from, for example sixteen inchei at the door 20 (FIG. 2) on the first or pushing side to nineteen inches at the door (not shown) on the second or coke side. Each coking chamber may be 15 meters in length and may have a height of 3 to 6 meters, though these dimensions vary for different coke oven batteries.
The coking chambers 16 are separated from each other by heating walls indicated generally at 22 in FIG. 2. In a conventional battery, the heating walls are formed from rows or courses of 5ilica bricks, with hundreds of bricks to each course.
Each heating wall has a plurality of flues 30 (FIG. 3d), which terminate in upper apertures 24, which flues typically are alternated between heating cycles and drafting cycles. Gas and heated air are introduced into the flues through gas nozzles 57 and air ports 58 in air/gas port modules 59 at the bottom of the flues. FIGS. 4 and 5a -Sd show the air/gas port modules 59 which arc disposed below the heating walls, each module having an air port 58 and a tapered gas port 56 which receives a gas nozzle 57. The air and gas are ignited, the burning gas in turn heating the heating walls to a temperature typically in the range of 2100 degrees to 2500 degrees Fahrenheit (1150 degrees to 1370 degrees Celsius).
When the coking cyJe for a particuhir coking chamber is completed. thc doors arc removed by the a door mechanism, not shown, and then a pusher ram 54 is introduced from the pusher side into the coking chamber to push the coke from within the coking chamber, the coke being discharged through a coke guide 25 and ) then into a quenching car 27. It should he noted at this point, chat the foregoing stnJcture of the coke oven battery and manner of operation of it are well known in the an.
An on-going problem in the operation of a coking oven battery is the progressive deterioration of Lhc heating walls between the coke oven chambers. In the past it has been the practice to initially repair a heating wall by spraying the surface with a suitable slurry of sprayable refractory gunning material. While this will slow down the deterioration of the wall surfaces of the coking chamber, eventually it will be necessary t rebuild at least an end portion of the heating wall, and eventually it may become necessary to reconstruct an entire heating wall. Repair or reconstruction of the wall is done by shutting off the air and gas flow to the heating wall so that there is no combustion within the flues, insulating the area which is to be repaired or replaced by placing wall insulation on the surface of the adjacent heating walls. The wall is repaired or replaced with either new silica bricks or bricks made from a refractory repair mix. Because of the large number of bricks which are employed in a heating wall, this is a very time-consuming process.
typically taking approximately 2 to 3 weeks for an end wall repair, and 6 to 8 weeks or longer for the reconstruction of an entire heating wall.
To overcome the drawbacks of standard bricks, a large size cast monolithic refractory repair module has been developed. l'hese modules arc disclosed in U.S. Pat. No. 5,423,152. Each module is formed from a refractory mix of the type which, when set and properly tired, has a high dimensional stability and good thermal shock resistance in the range from 0 degrees to 2850 degrees Fahrenheit (-17 degrees to 1566 degrees Celsius). In addition, the surface of the modules is resistant to abrasion such as may be present during the push of coke from the coking chamber at the end of the coking process. Each large size cast monolithic refractory module encompasses at least one entire flue from one side of the heating wall to the other side, and may encompass two or more flues, with three flues being typical for a mid-wall module. Each large size cast module is also the height of two courses of silica bricks. Thus, a typical silica brick is 6 inches in height, whereas the large size cast monolithic modules used in tills invention are 12 inches in height. Thus, one course of nodules replaces two courses of bricks. Other cast repair blocks may be used in ceiling repairs which ceiling blocks are also made from thc same or a comparable refractory mix. Thus, a variety of novel cast repair modules and blocks are provided for use in the repair of heating walls between coke oven chambers and for the repair of ceilings above the coking chambers defined by the adjacent heating walls.
However, prior to this invention. these modules and blocks have been used only (or repairing end walls on coke ovens.
In the following description and in the claims the term large size cast module refers n a module formed from a refractory mix of the type which, when set and properly fired, has a high dimensional stability and good thermal shock resistance in the range from 0 degrees to 2850 degrees Fahrenheit (-17 degrees to 1566 degrees Celsius). the surface of the module being resistant to abrasion such as may be present during the push of coke from the coking chamber at the end of the coking process, and the large size module including at least one flue, and perhaps as many as three flues, and extending from one side of a heating wall to the other side of the heating wall. In addition each large size cast module has a height equal to the height of two course of silica bricks. The term large size cast block refers to a block used in a ceiling repair which is formed from a refractory mix of the type which, when Set and properly fired, has a high dimensional stability and good thermal shock resistance in the range from 0 degrees to 2850 degrees Fahrenheit (-17 degrees to 1566 degrees Celsius).
When replacing a heating wall, a number of preliminary steps are made which are not illustrated in the drawings as these are conventional steps used when replacing a coke oven wall with silica bricks. Thus, the coke oven door.c 20 and door frames 21 are removed at the ends of the adjacent coking chambers 16. As shown in FIG. 4, insulation 31 is applied to the sides of the nearby heating walls 22 which are nor being reconstructed, and insulation 31 may also he applied to the floor 26. Also, for convenience in the reconstruction and to facilitate the introduction of the large size repair modules into the area to be repaired, the buckstay 28 at each end of the heating wall is cut off at the floor level and removed, along with the associated tie rods 29.
As set forth above, the modules to he used in the replacement of heating walls are large size cast monolithic modules 44 best shown in FIG. 6a. The oven is carefully measured, and the modules 44 are individually constructed using a proprietary process in odvancc of the vall replaccinent. Due to the taper of the oven wall, each module 44 is built for a specific location or locations within the oven wall. The modules are made in such a configuration that each module typically defines a vertical portion of at least one flue 30, with three flues per module being typical, as shown in Fig 6a. When stacked together and Construction of the wall is complete, the opcnings that define the flue portions line up with one another to form flues, and each module is formed so that, when in place, each flue has a gas nozzle and an air port at the bottom of it. It should be noted that as the coke oven chamber has approximately a 3-inch taper, being 3 inches wider at the coke side than at the pusher side, it is also necessary to dimension the modules to take into account the taper of the coking chamber.
FIG. 3 illusti-ates a novel feature of this invention, in which heavy equipment 32 is employed to break down and remove the heating walls which are to be replaced along with the associated ceiling. While two walls are being shown being broken down, a single wall may be broken down, or more than two walls maybe broken down. The brickwork is removed to the level of the floor 26 of the coking chamber.
The heating walls of the adjacent coking chambers may be Covered with insulation material 31 shown in FIG. 4 prior to the demolition of the walls which are to be reconstructed. Also, sheet metal may be laid over the insulation to further protect the adjacent heating walls during the demolition of the walls which are to be reconstructed. Once the debris 34 has been removed from the interior of the oven, heavy duty vacuuming equipment 36 as schematically shown in FIG. 4 is used to vacuum any remaining debris from the gas nozzles 56 and air ports 58 in the floor.
After it has been ascertained that the gas noizles 56 and air ports 58 are clear and free of debris, they are covered with sheet material such as a heavy paper, aluminum sheets, or an equivalent layer 38 of a sufficient strength to prevent any mortar from falling into the nozzles and plugging them up. and the paper or layer is fastened in place, as shown in FIG. 5a. At this time, the adjacent walls are insulated, if this has not been done earlier.
The floor is then carefully measured to see how level it is. If ii is relatively level, for example, by not having a more than I / inch variation over the length of the oven, the first course of modules 44 is laid as shown in FIG. 7. To this end, proper measurements are set between the first course of modules and the existing walls to insure proper taper of the oven. The first course of modules are selected from the large size modules which have been cast for this reconstniction, and the selected modules are then laid by using heavy equipment such as a crane to place them, then leveling and aligning the course. If the floor is relatively level, the first and second course can be mortared in such a manner that the top surface of the second course (FIG. 8a) is level. In this regard, up to 3/4 inch of mortar may he applied between the bottom of the first course and the floor, and also up to 3/4 inch of mortar may be applied between the first and second course. The mortar between additional course is preferably no more than A inch thick.
The first course may be provided with clean out ports 46. To this end, plugs 47 are cut out, which plugs are provided with suitable indicia so that they may he mortared hack into their original location after clean-out and before the wall is fired.
In some situations, the floor 26 is not sufficiently level to lay a first course of large size modules. When this happens, the first course may be made up of floor wings 39 and suitable end caps 4 1, the bottom of which may be cut with a masonry saw so that the tops form an essentially level surtäce. Levels 40 help maintain level installation as shown in FIG. 7, and would also be used with floor wings 39.
After the first (or second) course is laid, vertical story poles 60 (FIG. 8c) are secured each end of each course and a guide is attached to maintain the proper alignment. In this and subsequent layers, the modules are fabricated and laid so that the vertical seams between the modules do not line up with the seams in the row immediately below. While a pair of story poles are shown at the ends of two adjacent courses, a single vertical story pole may he used at each end, in which case horizontal bars may he employed, the horizontal bars being provided with eyelets or the like to which the guide strings are secured to maintain proper alignment.
Secondary air stacks 42 may be installed in the modules of the first two courses as they are laid as required, as 5hown in FIG. 8a. The secondary air stacks are made of the same refractory material used in the manufacture of modules 44.
Slots (not shown) can be cast into the module for the air stacks to be inserted into.
The air stacks are then mortared in place. In all other respects except for dimensional differences related to their location in the oven, the remaining modules are essentially the same. They are generally similar in shape and dimensions to what has been described in U.S. Patent 5,423,152.
The modules 44 fit together vertically with a tongue-and-groove construction, with the top surface of the first layer of modules provided with two longitudinal grooves 48 which each run the length of one of the sides, and the modules which correspond to layers higher than the first one within the oven have matching tongue-and-groove surfaces 50, 48 on the bottom and top surfaces, respectively, to reduce the possibility of emissions as best shown in FIG. 61.
A5 can be seen from FIGS. 8d and Sc each course includes a plurality of multiple flue large size cast modules and one end large size cast module which only incorporates a single flue. Thus in FIG. 8d which shows the third course of large size Cast modules used in the reconstruction of a heating wall, it can be seen that there are 8 large aize cast modules 44 which each incorporate 3 flues, and in addition there is a single large size cast module 45 which is disposed at an end, in this case the pusher side, which module incorporates only a single flue. In PIG. 8e, which illustrates the even course, it can be seen that there are 8 large size cast modules 44 which each incorporate 3 flues, and in addition there is a single large size cast module 45 which is disposed at an end, in this case the coke side. In each of these course, 7 of the 8 large size cast modules are of essentially the same design, although they are of progressively decreasing width from the pusher side to the coke side.
However, one of the large size cast modules 44 incorporates a nose portion 44a which is adapted to be disposed adjacent a buckstay 28. In both the even courses shown in FIG. 8e and the odd courses shown in PIG. 8d, there is a further large size cast module 45 which incorporates only a single flu, these modules 45 also incorporating a nose portion which is adapted to be disposed adjacent a buckstav.
The reason that the odd and even course alternate with the module 45 being disposed first on the pusher side and then on the coke side is so that ends of the modules 44 overlap other modules to reduce emissions, and to improve the stability of the heating wall that is being reconstructed. This is an essential feature of this invention.
As many courses are laid as is necessary to replace the walls to ceiling height, only a few being illustrated in FIG. 9. As the lower portions of the walls are completed, the walls have enough integrity to support scaffolding, to allow easier Construction of higher portions of the walls. With reference to FIGS. 14 and 15, each wall reconstruction is linished off with, going from top down, transitional modules 62, 64, 66, wing modules 72 similar to the wing modules 39 shown in FIG. 7a, and sliding block modules 68 which receive sliding blocks 70. Ii should be noted that each of the large size cast modules 44, the transitional modules 62, 64, and 66, and the sliding block modules 72 replace a large number of silica bricks. For example. the sliding block modules and each of the modules 44 replace 27 silica bricks.
After the healing walls have been replaced to the ceiling height, the top transition module 62 has its upper surface essentially at the bottom level of the ceiling. It is now necessary to rebuild the ceiling portion of the coke oven battery, not only above the heating wall that has been replaced, but also between the heating wall and other adjacent heating walls. This first course of the ceiling includes first large size generally rectangular bridging ceiling repair blocks 52 made of the same refractory material used in the modules 44 to produce a thermally stable, non-expanding cast block. The ceiling blocks also include various blocks 53, some of which (FIG. 13c) are shaped in such a way that they will form a passageway for the passage of gases from the coking chamber to a standpipe 12 which is to be disposed above the ceiling. Others FIG. 13a) form apertures for a smoke hole. And others (PIG. 13b) form apertures for charging the coking chambers. The shape and size of each ceiling block which forms an aperture above the coking chamber can be seen from PIGS. 13a -13c, and it should be noted that each of the cast blocks has the same width. It should be noted that in FIG. 10, four apcrtured bridging ceiling block courses are shown, whereas in FIGS. 13a 13c. only three bridging apertured ceiling blocks are shown. This is because differing batteries will require differing numbers of bridging ceiling blocks, typically 3 -5 courses. Each of these ceiling blocks is adapted to rest upon the top surface of the ceiling block or ceiling blocks belOw them, and they will extend slightly above the heating chamber, as their width is greater than the width of the coking chamber. It should be noted that each of the original walls adjacent the walls being reconstructed are provided with a ledge 35 FIG. 3), and the lowermost ceiling blocks will have one side which rests on the ledge, and the other side of the lowermost ceiling block will rest on the transitional course 62. Spaced between adjacent ceiling blocks on the transitional curse are a plurality of flue blocks 74 which have the apertures 24.
The balance of the ceiling or roof may now he completed by laying up additional courses of flue blocks and ceiling blocks. The equivalent of the final one or two courses may be poured, as shown in PIG. 13. This eliminates the necessity of using top papers and reduces top leakage. It should be noted that as the material used on the roof is not subject to either abrasion or to compressive loads, a number of suitable materials may be selected. High temperature castable material is preferred. The material can be mixed and pumped from the ground o the top of the battery, or other methods can be used such as mixing the castable on iop of the battery. After pouring, the ca,ciable is leveled and floated to match the contour of the crown on the existing battery top. and to allow rain water to run off.
After the wall replacement, the buckstay is re-installed, as is the door frame, door, and bulkhead, and the insulation material is removed.
Another unique feature of this invention is the shortened heat-up time required after repairs. Traditionally, after a reconstruction using silica bricks, a heat-up time of up to nine days is required o allow for expansion before the first charge.
However, after a wall replacement with large size cast modules and blocks, ovens only need to heat up to 48 hours, and more typically 24 hours before the initial charge.
While this invention has been described above and shown in the accompanying drawings. it should be understood that applicant does not intend to be limited to the panicular details described above and illustrated in the accompanying drawings. hut intends to be limited only to the scope of the invention as defined by the following claims.

Claims (18)

1. A method of reconstructing heating walls of coking chambers in a coke oven bauery from one end of the chamber to the opposite end, comprising: a) laying a first course of large size cast modules using thermally stable, non-expanding large size modular cast modules, each module having at least one vertical opening which when assembled will clef inc a portion of a flue; b) setting proper measurements between the first course of large size cast modules and the existing walls to insure proper taper of the oven; c) leveling and aligning the course of large size cast modules, using story poles.
guides and levels or equivalent: d) mortaring the large size cast modules into place; and e) repeating steps (a). (c), and (d) to install subsequent layers of large size cast modules.
2. The method as set forth in Claim 1 in which the second and subsequent courses of large size cast modules are staggered from the course below so the seams between the large size cast modules are not aligned vertically with the seams from the row immediately below the row being installed.
3. The method as set forth in Claim 1 in which vertically extending flues are formed by stacking large size cast modules so the vertical openings align to form vertical flues within the walls, which flues may be used alternately for burning fuel gases or for drafting.
4. The method as set forth in Claim 1 in which prior to step (a) the existing walls are demolished with heavy equipment or machinery.
5. The method as set forth in Claim 1 in which the air ports in the floor of the oven for the flues are vacuumed out with heavy duty vacuuming equipment or the equivalent prior tO step (a).
6. The method as set forth in Claim 1 in which the gas nozzles and air poris in the flour are covered over with a heavy paper, aluminum sheet, or a similar layer prior to starting construction to keep debris from falling into the holes.
7. The method as set forth in Claim I in which the interior of the oven is measured prior to fabrication of the large size cast modules, and the large size cast modules are custom made for each installation based on the measurements taken.
8. The method as set forth in Claim 1 in which secondary air stacks are installed as the first two courses are laid.
9. The method as set forth in Claim 1 in which clean-out ports are cut out of the first course of large size cast modules during construction, and the plugs taken from the clean-out ports are mortared back into place before the heating walls are completely reconstructed.
10. The method of replacing a coke oven ceiling comprising: laying a first course of ceiling blocks using thermally stable, modular non-expanding large size cast blocks, which large size cast blocks have been adapted to rest upon the top of the adjacent heating walls, at least one of which is a newly-laid wall; mortaring the large size cast blocks into place; installing and mortaring subsequent layers of large size cast ceiling blocks on iop of the first course of ceiling blocks: and pouring a top cover over the large size cast ceiling blocks.
11. The method of replacing a coke oven ceiling as set forth in Claim 10 in which the large size cast blocks are placed in such a way that hollow spaces defined by a pair of the large size cast blocks line up to form one of stand pipe openings, flue blocks or charge holes.
12. A method of reconstructing heating walls and the associated ceiling of coking chambers in a coke oven battery from one end of the chamber to the opposite end.
comprising: a) laying a first course of large size cast modules using thermally stable, non-expanding large size modular cast modules, each module having at least one vertical Ipetting which, when assembled, will define a portion of a flue; b) setting proper measurements between the first course of large size cast modules and the existing walls to insure proper taper of the oven; C) leveling and aligning the course of large size cast modules, using story polcs guides and levels or the equivalcnt d) mortaring the large size cast modules into place: e) repeating steps (a), (c), and (d) to install subsequent layers of large size cast modules; f) laying a first course of ceiling blocks using thermally stable, non-expanding large size modular cast ceiling blocks, which large size cast blocks have been adapted to rest upon the top of the adjacent heating walls, at least one of which is a newly-laid wall; g) mortaring the large size cast blocks into place; h) installing and mortaring subsequent layers of large size cast blocks on top of the first course: and I) pouring a top cover over the large size cast ceiling blocks.
13. The method of replacing a coke oven wall and/or ceiling as set forth in Claim 12 in which the oven is initially charged and heated for only about 24 to 48 hours prior to the first charge upon being put back into use.
14. A reconstructed heating wall extending from the pusher side to the coke side of coke oven battery, said heating wall being constructed of thermally stable non-expanding large size cast modules, each of which modules has at least one vertical opening which, when assembled, will define a portion of a flue.
15. A reconstructed heating wall extending from the pusher side to the coke side of coke oven battery as set forth in claim 14 in which in each course of large size cast modules has a plurality of large size cast modules which incorporate a plurality of flues.
16. A reconstructed heaing wall extending from the pusher side to the coke side of coke oven battery as set törth in claim 15 wherein adjacent courses of large size cast modules are offset with respect to each other.
17. A reconstructed heating wall extending from the pusher side to the coke side of coke oven battery as set forth in claim 14 wherein each course of large size cast modules replaces two course of silica bricks.
18. A reconstructed heating wall extending from the pusher side to the coke side of coke oven battery as set forth in claim 14 further including a ceiling constructed of thermally stable non-expanding large modular cast blocks.
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Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
FR2927630A1 (en) * 2008-02-15 2009-08-21 Vanocur Refractories L L C Heating wall reconstructing method for use in coke oven battery, involves leveling and aligning course of large size cast modules, and mortaring modules into place, where process is repeated to install layers of modules

Families Citing this family (66)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20110083314A1 (en) * 2007-03-02 2011-04-14 Saturn Machine & Welding Co., Inc. Method and apparatus for replacing coke oven wall
US20080209849A1 (en) * 2007-03-02 2008-09-04 Saturn Machine & Welding Co., Inc. Method and Apparatus for Replacing Coke Oven Wall
US7998316B2 (en) 2009-03-17 2011-08-16 Suncoke Technology And Development Corp. Flat push coke wet quenching apparatus and process
US8266853B2 (en) * 2009-05-12 2012-09-18 Vanocur Refractories Llc Corbel repairs of coke ovens
EP2474801B1 (en) * 2009-09-02 2014-04-30 Nippon Steel Engineering Co., Ltd. Method of demolishing furnace of multilayered-refractory structure
CN101659871B (en) * 2009-09-18 2013-01-02 山西兴高能源股份有限公司 Method for repairing main gas collecting tube of clean heat recovery coke-oven
US9200225B2 (en) 2010-08-03 2015-12-01 Suncoke Technology And Development Llc. Method and apparatus for compacting coal for a coal coking process
EP2649157A2 (en) * 2010-12-09 2013-10-16 Heatteq Refractory Holding B.V. Prefabricated coke oven wall, heavy lift construction for lifting and moving such a prefabricated coke oven wall, and method for repairing an existing coke oven battery
CN102533282A (en) * 2011-11-10 2012-07-04 中冶天工集团有限公司 Building process for combustion chamber of tamping coke oven with 5.5m coking chamber
US8980069B2 (en) 2011-11-17 2015-03-17 Allied Mineral Products, Inc. High temperature electrolysis cell refractory system, electrolysis cells, and assembly methods
EP3531018B1 (en) 2012-07-31 2024-03-20 SunCoke Technology and Development LLC System for handling coal processing emissions
US9359554B2 (en) 2012-08-17 2016-06-07 Suncoke Technology And Development Llc Automatic draft control system for coke plants
US9243186B2 (en) 2012-08-17 2016-01-26 Suncoke Technology And Development Llc. Coke plant including exhaust gas sharing
US9249357B2 (en) 2012-08-17 2016-02-02 Suncoke Technology And Development Llc. Method and apparatus for volatile matter sharing in stamp-charged coke ovens
US9169439B2 (en) 2012-08-29 2015-10-27 Suncoke Technology And Development Llc Method and apparatus for testing coal coking properties
IN2015KN00679A (en) 2012-09-21 2015-07-17 Suncoke Technology & Dev Llc
US9238778B2 (en) 2012-12-28 2016-01-19 Suncoke Technology And Development Llc. Systems and methods for improving quenched coke recovery
US10883051B2 (en) 2012-12-28 2021-01-05 Suncoke Technology And Development Llc Methods and systems for improved coke quenching
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US9476547B2 (en) 2012-12-28 2016-10-25 Suncoke Technology And Development Llc Exhaust flow modifier, duct intersection incorporating the same, and methods therefor
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CA2896478C (en) 2012-12-28 2016-06-07 Suncoke Technology And Development Llc. Vent stack lids and associated systems and methods
US9273249B2 (en) 2012-12-28 2016-03-01 Suncoke Technology And Development Llc. Systems and methods for controlling air distribution in a coke oven
US10047295B2 (en) 2012-12-28 2018-08-14 Suncoke Technology And Development Llc Non-perpendicular connections between coke oven uptakes and a hot common tunnel, and associated systems and methods
US9193915B2 (en) * 2013-03-14 2015-11-24 Suncoke Technology And Development Llc. Horizontal heat recovery coke ovens having monolith crowns
US9273250B2 (en) 2013-03-15 2016-03-01 Suncoke Technology And Development Llc. Methods and systems for improved quench tower design
CN103387834A (en) * 2013-07-03 2013-11-13 中冶焦耐工程技术有限公司 Foundation structure of split-combination-type coke oven
WO2015074003A1 (en) 2013-11-15 2015-05-21 Allied Mineral Products, Inc. High temperature reactor refractory systems
CN112251246B (en) 2013-12-31 2022-05-17 太阳焦炭科技和发展有限责任公司 Method for decarbonizing coke ovens and associated system and device
BR112016030880B1 (en) * 2014-06-30 2021-05-04 Suncoke Technology And Development Llc horizontal heat recovery coke oven chamber
CA3054519C (en) 2014-08-28 2021-05-25 Suncoke Technology And Development Llc Method and system for optimizing coke plant operation and output
WO2016044347A1 (en) 2014-09-15 2016-03-24 Suncoke Technology And Development Llc Coke ovens having monolith component construction
EP3197814A1 (en) 2014-09-22 2017-08-02 Fosbel, Inc. Methods and apparatus for constructing glass furnace structures
CZ2014815A3 (en) * 2014-11-24 2016-02-17 Famo- Servis, Spol. S R.O. Method of repairing refractory masonry of coke ovens during the operation thereof
WO2016109704A1 (en) 2014-12-31 2016-07-07 Suncoke Technology And Development Llc Multi-modal beds of coking material
KR102531894B1 (en) 2015-01-02 2023-05-11 선코크 테크놀러지 앤드 디벨로프먼트 엘엘씨 Integrated coke plant automation and optimization using advanced control and optimization technology
US11060032B2 (en) 2015-01-02 2021-07-13 Suncoke Technology And Development Llc Integrated coke plant automation and optimization using advanced control and optimization techniques
GB201503127D0 (en) * 2015-02-03 2015-04-08 Fosbel Inc Methods and apparatus for constructing glass furnace structures
PL3356756T3 (en) * 2015-09-28 2021-08-16 Bd Energy Systems, Llc Tunnel furnace and operating method thereof
WO2017117282A1 (en) 2015-12-28 2017-07-06 Suncoke Technology And Development Llc Method and system for dynamically charging a coke oven
JP6573837B2 (en) * 2016-02-05 2019-09-11 株式会社メガテック Coke oven combustion chamber repair method
JP7109380B2 (en) 2016-06-03 2022-07-29 サンコーク テクノロジー アンド ディベロップメント リミテッド ライアビリティ カンパニー Method and system for automatically generating remedial actions in industrial facilities
DE102016212061A1 (en) * 2016-07-01 2018-01-04 Thyssenkrupp Ag Apparatus and method for handling a chamber frame of a coke oven
JP6496759B2 (en) * 2017-02-13 2019-04-03 株式会社メガテック Collapse accident prevention device used for coke oven repair work
WO2018191592A1 (en) * 2017-04-14 2018-10-18 Blasch Precision Ceramics, Inc. Retention mechanism for refractory inserts for reformer flue gas tunnel
UA126400C2 (en) * 2017-05-23 2022-09-28 Санкоук Текнолоджі Енд Дівелепмент Ллк System and method for repairing a coke oven
USD874622S1 (en) * 2017-06-14 2020-02-04 Fosbel, Inc. Coke oven wall block assembly
JP2019035024A (en) * 2017-08-16 2019-03-07 株式会社メガテック Integral molding bricks for repairing a combustion chamber of a coke oven and a method for repairing using the same
JP2019038886A (en) * 2017-08-23 2019-03-14 株式会社メガテック Method for repairing partially wall body of coke oven combustion chamber
JP2019112503A (en) * 2017-12-21 2019-07-11 日本製鉄株式会社 Method of constructing coke oven of chamber oven type, and refractory structure of coke oven of chamber oven type
CN108315031A (en) * 2018-03-19 2018-07-24 中国科学院青岛生物能源与过程研究所 A kind of smalls gas retort
JP2020070341A (en) * 2018-10-31 2020-05-07 株式会社メガテック Dismantling and constructing method of coke oven
US11021655B2 (en) 2018-12-28 2021-06-01 Suncoke Technology And Development Llc Decarbonization of coke ovens and associated systems and methods
US11261381B2 (en) 2018-12-28 2022-03-01 Suncoke Technology And Development Llc Heat recovery oven foundation
CA3125279A1 (en) 2018-12-28 2020-07-02 Suncoke Technology And Development Llc Improved oven uptakes
WO2020140086A1 (en) 2018-12-28 2020-07-02 Suncoke Technology And Development Llc Particulate detection for industrial facilities, and associated systems and methods
BR112021012598B1 (en) 2018-12-28 2024-01-23 Suncoke Technology And Development Llc METHOD FOR DETECTING A LEAK IN A SYSTEM FOR COKING COAL, METHOD FOR DETECTING AN AIR LEAK IN A SYSTEM FOR COKING COAL, METHOD FOR DETECTING AN AIR LEAK IN A SYSTEM FOR COKING COAL UNDER NEGATIVE PRESSURE, AND METHOD FOR DETECTING A LEAK IN AIR BETWEEN A HIGH PRESSURE SYSTEM AND A LOW PRESSURE SYSTEM
WO2020140095A1 (en) 2018-12-28 2020-07-02 Suncoke Technology And Development Llc Spring-loaded heat recovery oven system and method
CA3125585C (en) 2018-12-31 2023-10-03 Suncoke Technology And Development Llc Improved systems and methods for utilizing flue gas
WO2020142391A1 (en) 2018-12-31 2020-07-09 Suncoke Technology And Development Llc Methods and systems for providing corrosion resistant surfaces in contaminant treatment systems
US11767482B2 (en) 2020-05-03 2023-09-26 Suncoke Technology And Development Llc High-quality coke products
CN113528161B (en) * 2021-08-04 2023-11-21 攀钢集团攀枝花钢钒有限公司 Control method for coke oven top uncovering repair without blowby
WO2023064851A1 (en) * 2021-10-15 2023-04-20 Vanocur Refractories Llc Corbel for a coke oven or coke oven battery
CN117120581A (en) 2021-11-04 2023-11-24 太阳焦炭科技和发展有限责任公司 Cast coke products and related systems, devices, and methods
US11946108B2 (en) 2021-11-04 2024-04-02 Suncoke Technology And Development Llc Foundry coke products and associated processing methods via cupolas
LU502499B1 (en) * 2022-07-13 2024-01-18 Wurth Paul Sa Coke oven roof repair, replacement or construction

Citations (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP0527318A2 (en) * 1991-08-01 1993-02-17 Tonawanda Coke Corporation Improved coke oven repair

Family Cites Families (14)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4069633A (en) * 1973-12-04 1978-01-24 Morgan Refractories Limited Refractory wall structures
FR2304660A1 (en) * 1975-03-19 1976-10-15 Otto & Co Gmbh Dr C PROCESS AND BRICK CONNECTION PLUGS FOR THE PARTIAL REPAIR OF HEATED WALLS OF A COKE OVEN COIL
US4285139A (en) * 1979-09-28 1981-08-25 Huston Charles W Trig pole for masonry construction
US4364798A (en) * 1980-12-30 1982-12-21 Bmi, Inc. Rebuilt coke oven heating chamber and method of making the same
FR2523148B1 (en) * 1982-03-10 1985-08-16 Lyskawa Entreprise Sa COKE OVEN BATTERY AND METHOD FOR THE REPAIR OF OLD BATTERIES
DE3210108A1 (en) * 1982-03-19 1983-09-22 Bergwerksverband Gmbh, 4300 Essen COOKING OVEN
US4452749A (en) * 1982-09-14 1984-06-05 Modern Refractories Service Corp. Method of repairing hot refractory brick walls
DE3242998A1 (en) * 1982-11-20 1984-05-24 Plibrico Co GmbH, 4000 Düsseldorf Roof for a coke-chamber oven
DE3816396A1 (en) * 1987-05-21 1989-03-02 Ruhrkohle Ag Coke oven roof
CA2034230C (en) * 1990-02-09 2001-07-03 Robert E. Kolvek Coke oven repair
US5597452A (en) * 1992-09-24 1997-01-28 Robert Bosch Gmbh Method of restoring heating walls of coke oven battery
WO1997005215A1 (en) * 1995-08-01 1997-02-13 Bhp Refractories Pty. Ltd. Coke oven
EP0905212B1 (en) * 1997-02-07 2003-05-07 Nkk Corporation Method for repairing and/or reinforcing a bulkhead for a bulkhead type heat exchanger
EP1067167A3 (en) * 1999-07-05 2003-02-05 Kawasaki Steel Corporation Method of repairing coke oven and apparatus for taking-in bricks for repair

Patent Citations (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP0527318A2 (en) * 1991-08-01 1993-02-17 Tonawanda Coke Corporation Improved coke oven repair

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
FR2927630A1 (en) * 2008-02-15 2009-08-21 Vanocur Refractories L L C Heating wall reconstructing method for use in coke oven battery, involves leveling and aligning course of large size cast modules, and mortaring modules into place, where process is repeated to install layers of modules

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GB0800676D0 (en) 2008-02-20

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